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Small molecules targeting the NADH-binding pocket of VDAC modulate mitochondrial metabolism in hepatocarcinoma cells

Voltage dependent anion channels (VDAC) control the flux of most anionic respiratory substrates, ATP, ADP, and small cations, crossing the outer mitochondrial membrane. VDAC closure contributes to the partial suppression of mitochondrial metabolism that favors the Warburg phenotype of cancer cells....

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Autores principales: Heslop, Kareem A., Burger, Pieter, Kappler, Christiana, Solanki, Ashish K., Gooz, Monika, Peterson, Yuri K., Mills, Catherine, Benton, Thomas, Duncan, Stephen A., Woster, Patrick M., Maldonado, Eduardo N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9400819/
https://www.ncbi.nlm.nih.gov/pubmed/35447542
http://dx.doi.org/10.1016/j.biopha.2022.112928
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author Heslop, Kareem A.
Burger, Pieter
Kappler, Christiana
Solanki, Ashish K.
Gooz, Monika
Peterson, Yuri K.
Mills, Catherine
Benton, Thomas
Duncan, Stephen A.
Woster, Patrick M.
Maldonado, Eduardo N.
author_facet Heslop, Kareem A.
Burger, Pieter
Kappler, Christiana
Solanki, Ashish K.
Gooz, Monika
Peterson, Yuri K.
Mills, Catherine
Benton, Thomas
Duncan, Stephen A.
Woster, Patrick M.
Maldonado, Eduardo N.
author_sort Heslop, Kareem A.
collection PubMed
description Voltage dependent anion channels (VDAC) control the flux of most anionic respiratory substrates, ATP, ADP, and small cations, crossing the outer mitochondrial membrane. VDAC closure contributes to the partial suppression of mitochondrial metabolism that favors the Warburg phenotype of cancer cells. Recently, it has been shown that NADH binds to a specific pocket in the inner surface of VDAC1, also conserved in VDAC2 and 3, closing the channel. We hypothesized that binding of small molecules to the NADH pocket, maintain VDAC in an open configuration by preventing closure induced by NADH and possible other endogenous regulators. We screened in silico, the South Carolina Compound Collection SC(3) (~ 100,000 proprietary molecules), using shape-based queries of the NADH binding region of VDAC. After molecular docking of selected compounds, we physically screened candidates using mitochondrial membrane potential (ΔΨm), as an overall readout of mitochondrial metabolism. We identified SC18, as the most potent compound. SC18 bound to VDAC1, as assessed by a thermal shift assay. Short-term treatment with SC18 decreased ΔΨm in SNU-449 and HepG2 human hepatocarcinoma cells. Mitochondrial depolarization was similar in wild type, VDAC1/2, 1/3, and 2/3 double KO HepG2 cells indicating that the effect of SC18 was not VDAC isoform-dependent. In addition, SC18 decreased mitochondrial NADH and cellular ATP production; and increased basal respiration. Long-term exposure to SC18, decreased cell proliferation as determined by wound-healing and cell viability assays. In summary, SC18 is a novel VDAC-targeting small molecule that induces mitochondrial dysfunction and inhibits cell proliferation.
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spelling pubmed-94008192022-08-24 Small molecules targeting the NADH-binding pocket of VDAC modulate mitochondrial metabolism in hepatocarcinoma cells Heslop, Kareem A. Burger, Pieter Kappler, Christiana Solanki, Ashish K. Gooz, Monika Peterson, Yuri K. Mills, Catherine Benton, Thomas Duncan, Stephen A. Woster, Patrick M. Maldonado, Eduardo N. Biomed Pharmacother Article Voltage dependent anion channels (VDAC) control the flux of most anionic respiratory substrates, ATP, ADP, and small cations, crossing the outer mitochondrial membrane. VDAC closure contributes to the partial suppression of mitochondrial metabolism that favors the Warburg phenotype of cancer cells. Recently, it has been shown that NADH binds to a specific pocket in the inner surface of VDAC1, also conserved in VDAC2 and 3, closing the channel. We hypothesized that binding of small molecules to the NADH pocket, maintain VDAC in an open configuration by preventing closure induced by NADH and possible other endogenous regulators. We screened in silico, the South Carolina Compound Collection SC(3) (~ 100,000 proprietary molecules), using shape-based queries of the NADH binding region of VDAC. After molecular docking of selected compounds, we physically screened candidates using mitochondrial membrane potential (ΔΨm), as an overall readout of mitochondrial metabolism. We identified SC18, as the most potent compound. SC18 bound to VDAC1, as assessed by a thermal shift assay. Short-term treatment with SC18 decreased ΔΨm in SNU-449 and HepG2 human hepatocarcinoma cells. Mitochondrial depolarization was similar in wild type, VDAC1/2, 1/3, and 2/3 double KO HepG2 cells indicating that the effect of SC18 was not VDAC isoform-dependent. In addition, SC18 decreased mitochondrial NADH and cellular ATP production; and increased basal respiration. Long-term exposure to SC18, decreased cell proliferation as determined by wound-healing and cell viability assays. In summary, SC18 is a novel VDAC-targeting small molecule that induces mitochondrial dysfunction and inhibits cell proliferation. 2022-06 2022-04-18 /pmc/articles/PMC9400819/ /pubmed/35447542 http://dx.doi.org/10.1016/j.biopha.2022.112928 Text en https://creativecommons.org/licenses/by-nc-nd/4.0/This is an open access article under the CC BY-NC-ND license (http://creativecommons.org/licenses/by-nc-nd/4.0/ (https://creativecommons.org/licenses/by-nc-nd/4.0/) ).
spellingShingle Article
Heslop, Kareem A.
Burger, Pieter
Kappler, Christiana
Solanki, Ashish K.
Gooz, Monika
Peterson, Yuri K.
Mills, Catherine
Benton, Thomas
Duncan, Stephen A.
Woster, Patrick M.
Maldonado, Eduardo N.
Small molecules targeting the NADH-binding pocket of VDAC modulate mitochondrial metabolism in hepatocarcinoma cells
title Small molecules targeting the NADH-binding pocket of VDAC modulate mitochondrial metabolism in hepatocarcinoma cells
title_full Small molecules targeting the NADH-binding pocket of VDAC modulate mitochondrial metabolism in hepatocarcinoma cells
title_fullStr Small molecules targeting the NADH-binding pocket of VDAC modulate mitochondrial metabolism in hepatocarcinoma cells
title_full_unstemmed Small molecules targeting the NADH-binding pocket of VDAC modulate mitochondrial metabolism in hepatocarcinoma cells
title_short Small molecules targeting the NADH-binding pocket of VDAC modulate mitochondrial metabolism in hepatocarcinoma cells
title_sort small molecules targeting the nadh-binding pocket of vdac modulate mitochondrial metabolism in hepatocarcinoma cells
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9400819/
https://www.ncbi.nlm.nih.gov/pubmed/35447542
http://dx.doi.org/10.1016/j.biopha.2022.112928
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